Petronijevic Emilija, Centini Marco, Cesca Tiziana, Mattei Giovanni, Bovino Fabio Antonio, Sibilia Concita
Opt Express. 2019 Aug 19;27(17):24260-24273. doi: 10.1364/OE.27.024260.
Active, ultra-fast external control of the emission properties at the nanoscale is of great interest for chip-scale, tunable and efficient nanophotonics. Here we investigated the emission control of dipolar emitters coupled to a nanostructure made of an Au nanoantenna, and a thin vanadium dioxide (VO) layer that changes from semiconductor to metallic state. If the emitters are sandwiched between the nanoantenna and the VO layer, the enhancement and/or suppression of the nanostructure's magnetic dipole resonance enabled by the phase change behavior of the VO layer can provide a high contrast ratio of the emission efficiency. We show that a single nanoantenna can provide high magnetic field in the emission layer when VO is metallic, leading to high emission of the magnetic dipoles; this emission is then lowered when VO switches back to semiconductor. We finally optimized the contrast ratio by considering different orientation, distribution and nature of the dipoles, as well as the influence of a periodic Au nanoantenna pattern. As an example of a possible application, the design is optimized for the active control of an Er doped SiO emission layer. The combination of the emission efficiency increase due to the plasmonic nanoantenna resonances and the ultra-fast contrast control due to the phase-changing medium can have important applications in tunable efficient light sources and their nanoscale integration.
在纳米尺度上对发射特性进行主动、超快速的外部控制,对于芯片级、可调谐且高效的纳米光子学具有极大的吸引力。在此,我们研究了与由金纳米天线和从半导体转变为金属态的二氧化钒(VO)薄层构成的纳米结构耦合的偶极发射器的发射控制。如果发射器夹在纳米天线和VO层之间,VO层的相变行为所引发的纳米结构磁偶极共振的增强和/或抑制,能够提供发射效率的高对比度。我们表明,当VO处于金属态时,单个纳米天线可在发射层中提供强磁场,从而导致磁偶极的高发射;而当VO切换回半导体态时,这种发射会降低。我们最终通过考虑偶极的不同取向、分布和性质,以及周期性金纳米天线图案的影响,优化了对比度。作为一个可能应用的示例,该设计针对掺铒SiO发射层的主动控制进行了优化。由于等离子体纳米天线共振导致的发射效率提高,以及由于相变介质导致的超快速对比度控制相结合,在可调谐高效光源及其纳米尺度集成方面可能具有重要应用。